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I don't get why

(var ||= []) << 1

works as expected but

(var ||= true) = false

doesn't.

Could anyone explain why it doesnt work and what is going on here?

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2 Answers 2

up vote 12 down vote accepted

a ||= b behaves like a || a = b.

An assignment returns the assigned value, i.e., var = true returns true.

var ||= true will evaluate to the assignment var = true, because var is undefined at that point. If var is defined and its value is true, it will return the value of var, that is true; if it's false, it will return the value of true, which is true.

var ||= [] returns [], and your first expression evaluated to [] << 1, which is legal.

However, your second expression evaluates to true = false, which throws a compile error.

tl;dr

(var ||= []) << 1(var = []) << 1[] << 1

(var ||= true) = false(var = true) = falsetrue = false

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2  
+1 for correct expansion of a ||= b –  Mark Thomas Jan 23 '12 at 12:13
    
Thank this guy :) rubyinside.com/… –  Júlio Santos Jan 23 '12 at 12:14
    
+1 for pointing at the correct source. –  Waseem Jan 23 '12 at 13:52
1  
@Waseem What do you mean by «correct source?» –  Júlio Santos Jan 23 '12 at 13:53
    
@JúlioSantos Some source that explains it correctly. The rubyinside link that you posted in your comment. –  Waseem Jan 23 '12 at 22:45

In the first case you have an object, and you uses its << method.

In the second case you have an assignment, where the right expression must be assigned to a variable on the left, not to an object or expression.

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+1 for a concise answer. –  Andrew Grimm Jan 24 '12 at 1:55

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